用AI自动解析建筑规范并生成合规检查代码,提升效率
ARCEAK: An Automated Rule Checking Framework Enhanced with Architectural Knowledge
- 将规则解析与代码生成分离,用大模型理解法规文本
- 实测可显著减少人工解读时间,提高检查一致性
- 适合建筑信息化、智能审图团队快速落地应用
自动化规则检查(ARC)在建筑行业具有重要意义,可解决传统设计审查中人力投入大、标准不一、易出错等问题。人工依据复杂规则集进行评估常导致项目延误和成本增加。现有方法在将法规文本转化为计算机可处理格式方面仍需大量人工干预,限制了实际应用。为此,本文提出一种新方法,将ARC分解为规则信息提取与验证代码生成两个任务。基于生成式预训练变换器,该方法旨在简化法规文本的机器理解,并降低合规检查代码的生成门槛。通过实验评估与案例研究,验证了该方法在自动化代码合规检查中的有效性与潜力,显著提升了建筑工程的效率与可靠性。
原文摘要 · Abstract (English)
Automated Rule Checking (ARC) plays a crucial role in advancing the construction industry by addressing the laborious, inconsistent, and error-prone nature of traditional model review conducted by industry professionals. Manual assessment against intricate sets of rules often leads to significant project delays and expenses. In response to these challenges, ARC offers a promising solution to improve efficiency and compliance in design within the construction sector. However, the main challenge of ARC lies in translating regulatory text into a format suitable for computer processing. Current methods for rule interpretation require extensive manual labor, thereby limiting their practicality. To address this issue, our study introduces a novel approach that decomposes ARC into two distinct tasks: rule information extraction and verification code generation. Leveraging generative pre-trained transformers, our method aims to streamline the interpretation of regulatory texts and simplify the process of generating model compliance checking code. Through empirical evaluation and case studies, we showcase the effectiveness and potential of our approach in automating code compliance checking, enhancing the efficiency and reliability of construction projects.
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